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DeephESC: An Automated System for Generating and Classification of Human Embryonic Stem Cells

机译:DeephESC:用于人类胚胎干细胞生成和分类的自动化系统

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Human Embryonic Stem Cells (hESC's) are promising for the treatment of many diseases such as cancer, Parkinsons, Huntingtons, diabetes mellitus etc. and for toxicological testing. Automated detection and classification of human embryonic stem cell (hESC) videos is of great interest among biologists for quantified analysis of various states of hESC in experimental work. To date, the biologists who study hESC's have to analyze stem cell videos manually. In this paper we introduce a hierarchical classification system consisting of Convolutional Neural Networks (CNN) and Triplet CNN's to classify hESC images into six different classes. We also design an ensemble of Generative Adversarial Networks (GAN) for generating synthetic images of hESC's. We validate the quality of the generated hESC images by training all of our CNN's exclusively on the synthetic images generated by the GAN's and evaluating them on the original hESC images. Experimental results shows that we classify the original hESC images, with an accuracy of 85.67% using the CNN alone, 91.38% accuracy using the CNN and Triplet CNN and 94.11% accuracy by fusing the outputs of the CNN and Triplet CNN's, out performing existing state-of-the-art approaches.
机译:人类胚胎干细胞(hESC's)有望用于治疗多种疾病,例如癌症,帕金森氏病,亨廷顿氏病,糖尿病等,并用于毒理学测试。人类胚胎干细胞(hESC)视频的自动检测和分类在生物学家中引起了广泛兴趣,用于量化分析实验工作中hESC的各种状态。迄今为止,研究hESC的生物学家必须手动分析干细胞视频。在本文中,我们介绍了一种由卷积神经网络(CNN)和三重态CNN组成的分层分类系统,将hESC图像分为六个不同的类别。我们还设计了生成对抗网络(GAN)的集合,以生成hESC的合成图像。我们通过在GAN生成的合成图像上专门训练所有CNN并在原始hESC图像上进行评估,来验证生成的hESC图像的质量。实验结果表明,我们对原始的hESC图像进行了分类,仅使用CNN的精度为85.67%,使用CNN和Triplet CNN的精度为91.38%,通过融合CNN和Triplet CNN的输出,精度为94.11%,不执行现有状态最先进的方法。

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